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Sleepiz - Machine Learning Engineer - Data Modeling

Sleepiz
3 - 7 Years
Bhubaneshwar

Posted on: 27/04/2026

Job Description

Description :

Role : Machine Learning Engineer - Modeling Focus

At Sleepiz, we are shaping the future of healthcare to ensure that patient care is more personalized, comfortable, and supportive by utilizing real-world data collected from patients in their Homes.

We are seeking a talented Machine Learning Engineer to join our team at Sleepiz and drive innovation in real-time vital signs monitoring. You will play a key role in developing our machine learning algorithms for performance, scalability, and real-time application. This position involves a mix of model training and optimization, system adaptation for real-time analysis, and reducing resource needs for inference. Your contributions will directly impact the scalability and efficiency of Sleepiz's cutting-edge health monitoring solutions, ensuring high-quality, real-time insights for patients and healthcare providers.

Key Responsibilities :

- Train/Optimize Machine Learning Models : Analyze and refine existing machine learning models for real-time vital signs monitoring, employing techniques like pruning, quantization, and knowledge distillation to enhance efficiency while maintaining accuracy.

- Rewrite Performance-Critical Code : Identify computational bottlenecks in current algorithms and rewrite resource-intensive operations using high-performance languages like Rust.

- Adapt Algorithms for Real-Time Processing : Ensure optimized models are adapted for real-time computation, enabling efficient live data processing for continuous health monitoring.

- Collaborate Across Teams : Work closely with software engineers, data scientists, and healthcare experts to ensure seamless integration of optimized algorithms into the Sleepiz platform.

- Contribute to Scalability and Reliability : Implement and test solutions that enhance the scalability, reliability, and robustness of Sleepiz's vital signs monitoring system.

- Stay Updated : Keep up with the latest developments in machine learning optimization and

high-performance computing to continually improve our solutions.

Key Requirements :

- Strong understanding of machine learning principles and experience optimizing models for performance.

- Proficiency in Python.

- Familiarity with model optimization techniques, including pruning, quantization, and knowledge distillation.

- Experience adapting algorithms for real-time data processing.

- Strong problem-solving and analytical skills to identify and resolve algorithmic inefficiencies.

- Understanding of performance-critical coding principles and experience rewriting computationally intensive code.

- Knowledge of software engineering best practices, including testing, debugging, and version control using Git.

Nice To Have :


- Exposure to MLOps workflows and deploying machine learning models in production environments.


- Experience with NN architectures for sequential data (e.g., transformers, RNNs).

- Experience with the Rust programming language.

- Familiarity with healthcare or biometric data systems.

- Experience working with live data streams or similar real-time systems.

- Knowledge of system scalability and distributed computing principles.


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